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破骨细胞中的密封区:骨表面的自组织结构

The Sealing Zone in Osteoclasts: A Self-Organized Structure on the Bone.

机构信息

Department of Oral Anatomy and Developmental Biology, School of Dentistry, Showa University, 1-5-8 Hatanodai, Shinagawa, Tokyo 142-8555, Japan.

出版信息

Int J Mol Sci. 2018 Mar 26;19(4):984. doi: 10.3390/ijms19040984.

Abstract

Osteoclasts form a specialized cell-matrix adhesion structure, known as the "sealing zone", during bone resorption. The sealing zone is a dynamic actin-rich structure that defines the resorption area of the bone. The detailed dynamics and fine structure of the sealing zone have been elusive. Osteoclasts plated on glass do not form a sealing zone, but generate a separate supra-molecular structure called the "podosome belt". Podosomes are integrin-based adhesion complexes involved in matrix adhesion, cell migration, matrix degradation, and mechanosensing. Invadopodia, podosome-like protrusions in cancer cells, are involved in cell invasion into other tissues by promoting matrix degradation. Both podosomes and invadopodia exhibit actin pattern transitions during maturation. We previously found that Arp2/3-dependent actin flow occurs in all observed assembly patterns of podosomes in osteoclasts on glass. It is known that the actin wave in cells exhibits a similar pattern transition in its evolution. Because of significant advances in our understanding regarding the mechanism of podosomes/invadopodia formation over the last decade, we revisited the structure and function of the sealing zone in this review, highlighting the possible involvement of self-organized actin waves in the organogenesis of the sealing zone.

摘要

破骨细胞在骨吸收过程中形成一种特殊的细胞-基质黏附结构,称为“封闭带”。封闭带是一种富含肌动蛋白的动态结构,定义了骨吸收的区域。封闭带的详细动力学和精细结构一直难以捉摸。在玻璃上培养的破骨细胞不会形成封闭带,而是会产生一种称为“足突带”的独立超分子结构。足突是整合素基黏附复合物,参与基质黏附、细胞迁移、基质降解和机械感应。破骨细胞中的侵袭伪足是类似于足突的突起,参与癌细胞向其他组织的入侵,通过促进基质降解。足突和侵袭伪足在成熟过程中都表现出肌动蛋白模式的转变。我们之前发现,在玻璃上培养的破骨细胞中,所有观察到的足突组装模式中都存在 Arp2/3 依赖性肌动蛋白流。众所周知,细胞中的肌动蛋白波在其演化过程中也表现出类似的模式转变。由于过去十年对足突/侵袭伪足形成机制的理解取得了重大进展,我们在这篇综述中重新探讨了封闭带的结构和功能,强调了自组织肌动蛋白波可能参与封闭带的器官发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffe8/5979552/9ff17c74037b/ijms-19-00984-g001.jpg

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